Combined gravitational and electromagnetic self-force on charged particles in electrovac spacetimes
Thomas M. Linz, John L. Friedman, Alan G. Wiseman

TL;DR
This paper develops a method to compute the self-force on a charged particle in curved spacetime with electromagnetic fields, showing that electromagnetic and gravitational effects can be renormalized separately due to a key cancellation.
Contribution
It extends previous self-force calculations to combined gravitational and electromagnetic perturbations, demonstrating that renormalization involves no mixing of these fields.
Findings
Renormalization involves separate electromagnetic and gravitational contributions.
Mode-sum regularization parameters are additive from electromagnetic and gravitational parts.
A remarkable cancellation simplifies the combined self-force calculation.
Abstract
We consider the self-force on a charged particle moving in a curved spacetime with a background electromagnetic field, extending previous studies to situations in which gravitational and electromagnetic perturbations are comparable. The formal expression for the self-force on a particle, written in terms of the retarded perturbed fields, is divergent, and a renormalization is needed to find the particle's acceleration at linear order in its mass and charge . We assume that, as in previous work in a Lorenz gauge, the renormalization for accelerated motion comprises an angle average and mass renormalization. Using the short distance expansion of the perturbed electromagnetic and gravitational fields, we show that the renormalization is equivalent to that obtained from a mode sum regularization in which one subtracts from the expression for the self-force in terms…
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